All Stories

  1. Fused deep learning enables 6D single-molecule localization in polarization-resolved microscopy
  2. Single Fluorogens and Orientation-Localization Microscopy for Quantifying Chemical and Biomolecular Dynamics at the Nanoscale
  3. Sensing negative-cone rotational diffusion of dipole-like emitters
  4. Nuclear speckle proteins form intrinsic and MALAT1-dependent microphases
  5. Single-molecule orientation localization microscopy I: fundamental limits: erratum
  6. Single-molecule orientation and localization microscopy
  7. Correction to “Single-Molecule Orientation Imaging Reveals the Nano-Architecture of Amyloid Fibrils Undergoing Growth and Decay”
  8. Differential interactions determine anisotropies at interfaces of RNA-based biomolecular condensates
  9. Painting rich six-dimensional pictures using polarized fluorescence microscopy
  10. Single-fluorogen imaging reveals distinct environmental and structural features of biomolecular condensates
  11. Resolving the Orientations of and Angular Separation Between a Pair of Dipole Emitters
  12. Nuclear speckle proteins form intrinsic and MALAT1-dependent microphases
  13. BPS2025 - Nuclear speckle proteins undergo intrinsic and RNA-dependent microphase separation
  14. BPS2025 - Nuclear speckle proteins undergo intrinsic and RNA-dependent microphase separation
  15. Combining Excitation and Emission Modulation Resolves the Angular Separation between a Pair of Dipole Emitters
  16. POLCAM: instant molecular orientation microscopy for the life sciences
  17. Differential interactions determine anisotropies at interfaces of RNA-based biomolecular condensates
  18. Differential interactions determine anisotropies at interfaces of RNA-based biomolecular condensates
  19. Fundamental Limits in Measuring the Anisotropic Rotational Diffusion of Single Molecules
  20. Single-Molecule Orientation Imaging Reveals the Nano-Architecture of Amyloid Fibrils Undergoing Growth and Decay
  21. Macromolecular condensation organizes nucleolar sub-phases to set up a pH gradient
  22. Single-Molecule Orientation Imaging Reveals the Nano-Architecture of Amyloid Fibrils Undergoing Growth and Decay
  23. Resolving the Nanoscale Structure of β-Sheet Peptide Self-Assemblies Using Single-Molecule Orientation–Localization Microscopy
  24. 6D single-fluorogen orientation-localization microscopy for elucidating the architecture of beta-sheet assemblies and biomolecular condensates
  25. PERISCOPE: Detecting and Mapping Organic Compounds in the Near Subsurface
  26. Single-molecule orientation-localization microscopy: Applications and approaches
  27. Single-molecule electrochemical imaging resolves the midpoint potentials of individual fluorophores on nanoporous antimony-doped tin oxide
  28. Dipole-Spread Function Engineering for Six-Dimensional Super-Resolution Microscopy
  29. Inside back cover
  30. Author response for "Single-Molecule Electrochemical Imaging Resolves the Midpoint Potentials of Individual Fluorophores on Nanoporous Antimony-Doped Tin Oxide"
  31. Resolving the nanoscale structure of β-sheet assemblies using single-molecule orientation-localization microscopy
  32. Single-molecule electrochemical imaging resolves the midpoint potentials of individual fluorophores on nanoporous antimony-doped tin oxide
  33. Single fluorogen imaging reveals spatial inhomogeneities within biomolecular condensates
  34. POLCAM: Instant molecular orientation microscopy for the life sciences
  35. A multi-view reflector microscope visualizes six-dimensional single-molecule translational and rotational dynamics with isotropic nanoscale resolution
  36. Mapping inhomogeneous network structures within biomolecular condensate using single-molecule imaging and tracking of fluorogenic probes
  37. Single-molecule orientation-localization microscopy resolves how amyloidophilic dye orientations are correlated with amyloid fiber growth and disruption
  38. Single fluorogen imaging reveals distinct environmental and structural features of biomolecular condensates
  39. Macromolecular Condensation Organizes Nucleolar Sub-Phases to Set Up a pH Gradient
  40. Six-dimensional single-molecule imaging with isotropic resolution using a multi-view reflector microscope
  41. Towards optimal point spread function design for resolving closely spaced emitters in three dimensions
  42. Deep-SMOLM: deep learning resolves the 3D orientations and 2D positions of overlapping single molecules with optimal nanoscale resolution
  43. Deep-SMOLM: Deep Learning Resolves the 3D Orientations and 2D Positions of Overlapping Single Molecules with Optimal Nanoscale Resolution
  44. Six-Dimensional Single-Molecule Imaging with Isotropic Resolution using a Multi-View Reflector Microscope
  45. In Situ Imaging of Catalytic Reactions on Tungsten Oxide Nanowires Connects Surface–Ligand Redox Chemistry with Photocatalytic Activity
  46. Dipole-spread-function engineering for simultaneously measuring the 3D orientations and 3D positions of fluorescent molecules
  47. Tribute to W. E. Moerner
  48. Accurate superresolution microscopy of the 3D orientations and 3D locations of single molecules within lipid membranes and biomolecular condensates
  49. Mapping the chemical composition and nanoscale structure of lipid membranes using polarized fluorescence from single molecules
  50. Visualizing the nanoscale architecture of amyloid aggregates using amyloidophilic probes and a polarized vortex microscope
  51. Resolving the Three-Dimensional Rotational and Translational Dynamics of Single Molecules Using Radially and Azimuthally Polarized Fluorescence
  52. pixOL: pixel-wise dipole-spread function engineering for simultaneously measuring the 3D orientation and 3D localization of dipole-like emitters
  53. Single-Molecule Localization Microscopy of 3D Orientation and Anisotropic Wobble Using a Polarized Vortex Point Spread Function
  54. Resolving the 3D rotational and translational dynamics of single molecules using radially and azimuthally polarized fluorescence
  55. Single-Molecule Localization Microscopy of 3D Orientation and Anisotropic Wobble using a Polarized Vortex Point Spread Function
  56. Elucidating the nanoscale architecture of amyloid aggregates using a polarized donut point spread function
  57. pixOL: pixel-wise point spread function engineering for measuring the 3D orientation and 3D location of dipole-like emitters
  58. Single-Molecule Colocalization of Redox Reactions on Semiconductor Photocatalysts Connects Surface Heterogeneity and Charge-Carrier Separation in Bismuth Oxybromide
  59. Single-molecule orientation localization microscopy I: fundamental limits
  60. Single-molecule orientation localization microscopy II: a performance comparison
  61. COMPUTATIONAL MODELLING ENABLES ROBUST MULTIDIMENSIONAL NANOSCOPY
  62. Imaging chemical environments and amyloid architectures using single-molecule orientation-localization microscopy
  63. Robustly detecting imaging model mismatches and reconstruction artifacts in single-molecule localization microscopy
  64. Quantifying accuracy and heterogeneity in single-molecule super-resolution microscopy
  65. Back Cover: Single‐Molecule 3D Orientation Imaging Reveals Nanoscale Compositional Heterogeneity in Lipid Membranes (Angew. Chem. Int. Ed. 40/2020)
  66. Rücktitelbild: Single‐Molecule 3D Orientation Imaging Reveals Nanoscale Compositional Heterogeneity in Lipid Membranes (Angew. Chem. 40/2020)
  67. Single‐Molecule 3D Orientation Imaging Reveals Nanoscale Compositional Heterogeneity in Lipid Membranes
  68. Single‐Molecule 3D Orientation Imaging Reveals Nanoscale Compositional Heterogeneity in Lipid Membranes
  69. Quantum limits for precisely estimating the orientation and wobble of dipole emitters
  70. Competing Activation and Deactivation Mechanisms in Photodoped Bismuth Oxybromide Nanoplates Probed by Single-Molecule Fluorescence Imaging
  71. Single-molecule orientation localization microscopy for resolving structural heterogeneities between amyloid fibrils
  72. Single-molecule 3D orientation imaging reveals nanoscale compositional heterogeneity in lipid membranes
  73. Single-molecule activity mapping of tungsten oxide nanowire photocatalysts
  74. Single-molecule activity mapping of tungsten oxide nanowire photocatalysts
  75. A computationally-efficient bound for the variance of measuring the orientation of single molecules
  76. Measuring localization confidence for quantifying accuracy and heterogeneity in single-molecule super-resolution microscopy
  77. Enhanced Transient Amyloid Binding Microscopy using Single-Molecule Orientation Measurements
  78. Superresolution 3D Orientation Imaging Reveals Nanoscale Compositional Heterogeneity in Lipid Membranes
  79. Single-molecule orientation localization microscopy for resolving structural heterogeneities between amyloid fibrils
  80. Nanoscale Colocalization of Fluorogenic Probes Reveals the Role of Oxygen Vacancies in the Photocatalytic Activity of Tungsten Oxide Nanowires
  81. Erratum: “Imaging the three-dimensional orientation and rotational mobility of fluorescent emitters using the Tri-spot point spread function” [Appl. Phys. Lett. 113, 031103 (2018)]
  82. Measuring localization confidence for quantifying accuracy and heterogeneity in single-molecule super-resolution microscopy
  83. Fundamental Limits on Measuring the Rotational Constraint of Single Molecules Using Fluorescence Microscopy
  84. Dense Super-Resolution Imaging of Molecular Orientation Via Joint Sparse Basis Deconvolution and Spatial Pooling
  85. Fundamental limits of measuring single-molecule rotational mobility
  86. Long-term, super-resolution imaging of amyloid structures using transient amyloid binding microscopy
  87. Superresolution Imaging of Amyloid Structures over Extended Times using Transient Binding of Single Thioflavin T Molecules
  88. Fundamental Limits on Imaging the Orientational Dynamics of Dipole-Like Emitters
  89. Long-Term Super-Resolution Imaging of Amyloid Structures Using Transient Binding of Thioflavin T
  90. Measuring Rotational Dynamics with High Accuracy and Precision Using a Tri-spot Point Spread Function
  91. Single-Molecule Super-Resolution Imaging of Molecular Orientation using a Tri-Spot Point Spread Function
  92. Cover Feature: Super-resolution Imaging of Amyloid Structures over Extended Times by Using Transient Binding of Single Thioflavin T Molecules (ChemBioChem 18/2018)
  93. Minimizing Structural Bias in Single-Molecule Super-Resolution Microscopy
  94. Super-resolution Imaging of Amyloid Structures over Extended Times by Using Transient Binding of Single Thioflavin T Molecules
  95. Imaging the three-dimensional orientation and rotational mobility of fluorescent emitters using the Tri-spot point spread function
  96. Cellular Trafficking of Sn-2 Phosphatidylcholine Prodrugs Studied with Fluorescence Lifetime Imaging and Super-resolution Microscopy
  97. Minimizing Structural Bias in Single-Molecule Super-Resolution Microscopy
  98. A robust statistical estimation (RoSE) algorithm jointly recovers the 3D location and intensity of single molecules accurately and precisely
  99. Measuring 3D molecular orientation and rotational mobility using a Tri-spot point spread function
  100. Speckle-modulation for speckle reduction in optical coherence tomography
  101. Long-Term Super-Resolution Imaging of Amyloid Structures using Transient Binding of Standard Amyloid Probes
  102. Speckle-Free Non-Invasive Imaging with Speckle-Modulating Optical Coherence Tomography
  103. Erratum: Speckle-modulating optical coherence tomography in living mice and humans
  104. Speckle-modulating optical coherence tomography in living mice and humans
  105. 3D Single-Molecule Super-Resolution Fluorescence Microscopy with the Corkscrew Point Spread Function
  106. Correcting field-dependent aberrations with nanoscale accuracy in three-dimensional single-molecule localization microscopy
  107. Accurate 3D Nanoscale Imaging of Dipole-like Emitters
  108. An Azimuthal Polarizer Assures Localization Accuracy in Single-Molecule Super-Resolution Fluorescence Microscopy
  109. Azimuthal Polarization Filtering for Accurate, Precise, and Robust Single-Molecule Localization Microscopy
  110. Single-molecule orientation measurements with a quadrated pupil
  111. Precise Measurement of the Relative Position of RNA Dimers within Virus-Like Particles using 2-Color 3D Super-Resolution Fluorescence Microscopy
  112. The Role of Molecular Dipole Orientation in Single-Molecule Fluorescence Microscopy and Implications for Super-Resolution Imaging
  113. Single-molecule orientation measurements with a quadrated pupil
  114. Easy-DHPSF open-source software for three-dimensional localization of single molecules with precision beyond the optical diffraction limit
  115. The double-helix point spread function enables precise and accurate measurement of 3D single-molecule localization and orientation
  116. Rotational Mobility of Single Molecules Affects Localization Accuracy in Super-Resolution Fluorescence Microscopy
  117. Measuring the 3D Position and Orientation of Single Molecules Simultaneously and Accurately with the Double Helix Microscope
  118. Optical Methods for Measuring Single-Molecule Orientation and Position: Implications for Super-Resolution Microscopy
  119. Single-Molecule Orientation Measurements with a Quadrated Pupil
  120. The Double-Helix Microscope Enables Precise and Accurate Measurement of 3D Single-Molecule Orientation and Localization Beyond the Diffraction Limit
  121. Simultaneous, accurate measurement of the 3D position and orientation of single molecules
  122. Extending Microscopic Resolution with Single-Molecule Imaging and Active Control
  123. The double-helix microscope super-resolves extended biological structures by localizing single blinking molecules in three dimensions with nanoscale precision
  124. Single-Molecule Photocontrol and Nanoscopy
  125. Three-dimensional superresolution colocalization of intracellular protein superstructures and the cell surface in live Caulobacter crescentus
  126. Corkscrew point spread function for far-field three-dimensional nanoscale localization of pointlike objects
  127. Super-Resolution 3D Co-Localization of Protein Superstructures and the Cellular Surface in Live Caulobacter crescentus
  128. Three-Dimensional Super-Resolution Imaging with a Corkscrew Point Spread Function
  129. Three-dimensional localization precision of the double-helix point spread function versus astigmatism and biplane
  130. In vivo three-dimensional superresolution fluorescence tracking using a double-helix point spread function
  131. Localizing and Tracking Single Nanoscale Emitters in Three Dimensions with High Spatiotemporal Resolution Using a Double-Helix Point Spread Function
  132. Localizing and Tracking Single Emitters in Three Dimensions Using a Double-Helix Point Spread Function
  133. Localization Precision of Three-Dimensional Superresolution Fluorescence Imaging Using a Double-Helix Point Spread Function
  134. Three-Dimensional Superresolution Using Single-Molecule Photoswitches and a Double-Helix PSF
  135. Quantitative differential interference contrast microscopy based on structured-aperture interference
  136. Two-dimensional differential interference contrast microscopy based on four-hole variation of Young's interference
  137. Interference of a four-hole aperture for on-chip quantitative two-dimensional differential phase imaging
  138. On-chip differential interference contrast (DIC) phase imager and beam profiler based on Young's interference